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Good evening, people!

I'm trying to solve a rather simple problem, but.. well, it seems that I can't. :)

The idea is that I have a FIFO list (FIFO queue) with n elements and it's given a value, k (k < n). My little program has to move the elements to the left with k elements. (e.g. for n=4, k=3, a[]=(1, 2, 3, 4), the result is 4 1 2 3).

But well, I get nowhere near that.

This is what I've written so far:

#include <iostream>
using namespace std;

void move (int a[100], unsigned n, unsigned k) {
        int t[100];
        unsigned i;
        for (i=0; i<=n-1; i++) t[i]=a[i];
        for (i=0; i<=k-1; i++) a[i]=a[i+k-1];
        for (i=k; i<=n-1; i++) a[i]=t[i+1];
}

int main () {
        int a[100];
        unsigned k, n, i;
        cout<<"n; k= "; cin>>n>>k;
        for (i=0; i<=n-1; i++) cin>>a[i];
        move (a, n, k);
        for (i=0; i<=n-1; i++) cout<<a[i]<<" ";
}

Any help would be greatly appreciated. Thank you in advance.

share|improve this question
    
What does 'move the elements to the left with k elements' mean? You mean 'move the kth element to the front of the queue?' –  Nick Meyer Feb 3 '10 at 17:55
1  
Man, that is really an ugly piece of source code, even after codaddict cleaned it up a little bit. The -1 is not from me, but I wouldn't be surprised if it was because of the code. My advice for the future, since you seem to be learning: Write and format your code for its readers, rather than for your convenience when typing. This will improve your code quality, and will make it more likely that someone will answer your questions. Now please excuse me, I think I'm going upstairs to the open source guy and tell him how ugly C++ is, if he's still in this building. –  OregonGhost Feb 3 '10 at 17:58
    
I'm sorry... Excuse my dingy code. –  flowerpowerduck Feb 3 '10 at 18:21

5 Answers 5

up vote 2 down vote accepted

I'm not sure if I've understood your question completely. But looks like you effectively want to rotate the contents of the array.

To rotate the array contents to the left k times. You can do the following:

  • Reverse the first K elements.
  • Reverse the remaining N-K elements.
  • Reverse the entire array.

Example:

N = 5, K = 3, and array = [1 2 3 4 5]

  • step 1: reverse the first 3 elements: [3 2 1 4 5]
  • step 2: reverse the remaining 2 elements: [3 2 1 5 4]
  • step 3: reverse the entire array: [4 5 1 2 3]

C++ function to do the same:

void move (int a[100], int n, int k) {
        int t[100];
        int i,j;
        for (i=k-1,j=0; i>=0; i--,j++) t[j]=a[i];
        for (i=n-1; i>=k; i--,j++) t[j]=a[i];
        for (i=n-1,j=0; i>=0; i--,j++) a[j]=t[i];
}

A better way to do it in constant space is to do the reversal in-place:

void arr_rev(int a[100], int start, int end) {
        int temp;

        for(;start<end;start++,end--) {
                temp = a[start];
                a[start] = a[end];
                a[end] = temp;
        }
}

void move2 (int a[100], int n, int k) {
        arr_rev(a,0,k-1);
        arr_rev(a,k,n-1);
        arr_rev(a,0,n-1);
}
share|improve this answer
    
Thank you, codaddict. :) –  flowerpowerduck Feb 3 '10 at 19:03

Since you've tagged this as C++, I'll assume that's what you're using. In that case, you should almost certainly be using an std::deque instead of an array for storing the data. In addition, a queue normally has a "front" and a "back", so "left" doesn't really mean much.

Assuming (just for the sake of argument) that what you want is to take k elements from the back of the queue and move them to the front, you could do something like:

typedef std::deque<your_type> data;

void push_to_front(data &d, int k) { 
    if (k > d.size())
        return;
    for (int i=0; i<k; i++) {
        data::value_type v = d.pop_back();
        d.erase(d.back());
        d.push_front(v);
    }
}      

If you want to rotate in the other direction, it's pretty much a matter of swapping the roles of the front and back.

share|improve this answer
    
Thank you for yer response. I really am a beginner (hard not to notice), and well, I've never heard of std::deque. But I'll look into it. Thank you. :) –  flowerpowerduck Feb 3 '10 at 18:23

It looks like you want a left-rotate? That shouldn't be very difficult. Just dequeue the first k elements, shift the remaining n-k elements to the left (possibly by putting them at the beginning of a temporary array), and then add in the first k at the end in order.

To modify your code in this manner might look like this:

void move (int a[100], unsigned n, unsigned k) {
        int t[100];
        unsigned i;
        for (i=k; i<=n-1; i++) t[i-k]=a[i];
        for (int x=0; x<=k-1; x++) t[i++-k]=a[x];
}

And since this is still ugly, you might rewrite it to make the logic more clear, but I will leave that as an exercise.

This also assumes you are not allowed to use STL data structures; if that is not the case, see Jerry Coffin's answer.

share|improve this answer
    
Thank you, Danben! This approach was what I was trying to do. As for STL data structures, I've yet to learn those. :) Thank you, again. –  flowerpowerduck Feb 3 '10 at 18:40

If you mean "move the kth element to the front of the queue", then this is one way to do it:

void move( int *a, unsigned n, unsigned k )
{ 
    int t; // To store the temporary for the k'th element 

    t = a[ k ];

    // Shift all the elements to the right by one.
    for( unsigned i = k; i > 0; --i )
        a[ i ] = a[ i - 1 ];

    // Put the k'th element at the left of the queue.
    a[ 0 ] = t;
}
share|improve this answer
    
I don't think he means that. In his example, k is 3. –  danben Feb 3 '10 at 18:09
#include <iostream>
#include <list>
template <typename T>
void Rotate(std::list<T>& list, int k){
    for(int i=0; i<k; ++i){
        T tmp(list.back());
        list.pop_back();
        list.push_front(tmp);
    }
}
int main(){
    std::list<int> ints;
    ints.push_back(1); ints.push_back(2);
    ints.push_back(3); ints.push_back(4);
    Rotate(ints,2);
    for(std::list<int>::const_iterator i = ints.begin(); i!=ints.end(); ++i)
        std::cout << *i << std::endl;
    return 0;
}

Will output:

3
4
1
2
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